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Controlling deformations of thin-walled Al 6061-T6 components by adaptive clamping

机译:通过自适应夹紧控制薄壁Al 6061-T6零件的变形

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High strength, light weight, thin-walled components are gaining in importance with good market growth potential in key industries like aerospace, automotive, power generation, medical technology, etc. The challenges in machining thin-walled workpieces include static workpiece displacements and large deformations caused by local indentations at contacts and higher structural compliance, respectively. The chosen machining strategy is crucial to obtain good surface finish and fine control over dimensions and form. Owing to the limited applicability of analytical methods to standard workpiece geometries, a finite element method based numerical framework is developed in ANSYS for predicting contact and structural deformations that suits all workpiece geometries and boundary conditions. The numerical results are validated by experimental measurements using CNC-CMM on Aluminium 6061-T6 workpiece located in 3-2-1 milling fixture with two hydraulic clamps having adjustable clamping pressure. The results of static deformations match within 20%. Subsequently, clamping force-deformation characteristics are plotted for implementing corrective clamping mechanism to control workpiece deformations. This methodology will be integrated with the Computer Aided Fixture Design (CAFD) System to realize design of adaptive clamping fixtures, thereby, reducing rejections and increasing quality and productivity.
机译:在航空航天,汽车,发电,医疗技术等关键行业中,高强度,轻质薄壁部件正变得越来越重要,并具有良好的市场增长潜力。加工薄壁工件的挑战包括静态工件位移和大变形分别由接触处的局部压痕和较高的结构柔顺性引起。选择的加工策略对于获得良好的表面光洁度以及对尺寸和形状的精细控制至关重要。由于分析方法对标准工件几何形状的适用性有限,ANSYS中开发了一种基于有限元方法的数值框架,用于预测适合所有工件几何形状和边界条件的接触和结构变形。数值结果通过使用CNC-CMM对位于3-2-1铣削夹具中的铝6061-T6工件进行实验测量得到了验证,该工件具有两个液压夹具,夹具的压力可调节。静态变形的结果在20%以内。随后,绘制夹紧力-变形特性,以实现校正夹紧机制以控制工件变形。该方法将与计算机辅助夹具设计(CAFD)系统集成,以实现自适应夹具的设计,从而减少废品率并提高质量和生产率。

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